Phase Dynamics and Dissipation in Tunnel Ferromagnetic Josephson Junctions

Abstract We investigate tunnel ferromagnetic Josephson junctions based on Superconductor-Insulator-thin superconductor-Ferromagnet-Superconductor multilayers. A comparative study of their electrodynamic properties is performed for junctions with niobium and aluminum (Al) electrodes, featuring different ferromagnetic interlayer materials and lateral dimensions ranging from the micrometric to the submicrometric scale. The parameters extracted from the fitting of the current-voltage characteristics using the tunnel junction microscopic model are found to be consistent with those independently estimated from switching current distribution measurements. Submicrometric Al-based devices exhibit electrodynamic properties comparable to those implemented in state-of-the-art transmon qubits and display clear signatures of quantum phase diffusion. The strong agreement between transport modelling and escape dynamics establishes a robust framework for describing hybrid ferromagnetic Josephson junctions consistent with their energy scales and supports their potential integration into superconducting quantum and classical digital circuits.

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Publication Details

Journal
Journal of Superconductivity and Novel Magnetism
Published
2026-09-15
DOI
https://doi.org/10.1007/s10948-026-07236-2
Primary Topic
Quantum and electron transport phenomena
Type
article
Field-Weighted Citation Impact
0.00

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article

Phase Dynamics and Dissipation in Tunnel Ferromagnetic Josephson Junctions

D. Montemurro, G. Ausanio, R. Satariano, G. P. Pepe et al.
Journal of Superconductivity and Novel Magnetism
Quantum and electron transport phenomena
article

Phase Dynamics and Dissipation in Tunnel Ferromagnetic Josephson Junctions

D. Montemurro, G. Ausanio, R. Satariano, G. P. Pepe, D. Gatta, A. Bruno, D. Massarotti, F. Calloni, H. G. Ahmad, A. Vettoliere, E. Raja, C. Granata, N. Poccia, G. Serpico, R. Ferraiuolo, L. Parlato, G. Santo, R. Vydyasagar, F. Tafuri
article en

Abstract

Abstract We investigate tunnel ferromagnetic Josephson junctions based on Superconductor-Insulator-thin superconductor-Ferromagnet-Superconductor multilayers. A comparative study of their electrodynamic properties is performed for junctions with niobium and aluminum (Al) electrodes, featuring different ferromagnetic interlayer materials and lateral dimensions ranging from the micrometric to the submicrometric scale. The parameters extracted from the fitting of the current-voltage characteristics using the tunnel junction microscopic model are found to be consistent with those independently estimated from switching current distribution measurements. Submicrometric Al-based devices exhibit electrodynamic properties comparable to those implemented in state-of-the-art transmon qubits and display clear signatures of quantum phase diffusion. The strong agreement between transport modelling and escape dynamics establishes a robust framework for describing hybrid ferromagnetic Josephson junctions consistent with their energy scales and supports their potential integration into superconducting quantum and classical digital circuits.

Journal of Superconductivity and Novel MagnetismVol. 39(5)
Leibniz Institute for Solid State and Materials Research (DE), Institute of Applied Science and Intelligent Systems (IT), Ingegneria dei Trasporti (Italy) (IT), Federico II University Hospital (IT), University of Naples Federico II (IT), Delft University of Technology (NL)
Università degli Studi di Napoli Federico II
Affordable and clean energy
Openalex Percentile: Top 57%
Quantum and electron transport phenomena
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